Speed Sensorless Vector Control of an Induction Motor using Spiral Vector Model-ECKF and ANN Controller

M. Menaa, O. Touhami, R. Ibtiouen, Maurice Fadel
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引用次数: 5

Abstract

This paper presents a speed sensorless vector control of an induction motor using an extended complex Kalman filter, a neural network, a spiral vector model and two sensors for tracking voltage and current of one phase of stator. The spiral vector model uses the spiral vector variables rotating counter clockwise in the complex plane. This model depends only on variables and parameters of one phase of stator and one phase of rotor without Park transformation. The rotor speed, airgap flux and stator current of one phase are estimated by a new variant of the extended Kalman filter in the complex domain. The estimated rotor speed, airgap flux and stator current are used for vector control where all controllers are based on the neural network. Computer simulations have been carried out to test the effectiveness and robustness of the proposed control under noise and several load torques.
基于螺旋矢量模型- eckf和神经网络控制器的异步电机无速度传感器矢量控制
本文提出了一种异步电动机的无速度传感器矢量控制方法,该方法采用扩展的复杂卡尔曼滤波、神经网络、螺旋矢量模型和两个定子单相电压和电流跟踪传感器。螺旋矢量模型使用螺旋矢量变量在复平面上逆时针旋转。该模型只依赖于定子一相和转子一相的变量和参数,不需要进行Park变换。采用一种新的扩展卡尔曼滤波方法在复域估计转子转速、气隙磁通和定子电流。利用估计的转子转速、气隙磁通和定子电流进行矢量控制,其中所有控制器都基于神经网络。计算机仿真验证了该控制方法在噪声和不同负载转矩下的有效性和鲁棒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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